1

I am trying to use OUTPUT param instead of SCOPE_IDENTITY in my query. I have gone through some resources but couldn't understand how to use it. For example I am adding my existing code.

protected string Test(DataRow dataRow, out QueryParamList paramList)
    {
        paramList = new QueryParamList();

        StringBuilder sqlBuilder1 = new StringBuilder();
        StringBuilder sqlBuilder2 = new StringBuilder();

        for (int i = 0; i < dataRow.ItemArray.Length; i++)
        {
            if (!IsPrimaryKey(dataRow, i))
            {
                if (dataRow.ItemArray[i] != DBNull.Value)
                {
                    sqlBuilder1.Append(dataRow.Table.Columns[i].Caption + ",");
                    sqlBuilder2.Append("@" + dataRow.Table.Columns[i].Caption + ",");
                    DbType dbType = (DbType)Enum.Parse(typeof(DbType), dataRow.Table.Columns[i].DataType.Name);
                    paramList.Add(new QueryParamObj() { ParamName = dataRow.Table.Columns[i].Caption, ParamValue = dataRow.ItemArray[i], DBType = dbType });
                }
            }
        }
        if (sqlBuilder1.Length > 0) sqlBuilder1.Remove(sqlBuilder1.Length - 1, 1);
        if (sqlBuilder2.Length > 0) sqlBuilder2.Remove(sqlBuilder2.Length - 1, 1);

        string finalQuery = "Insert Into " + dataRow.Table.TableName + "(" + sqlBuilder1.ToString() + ")" + " values(" + sqlBuilder2.ToString() + ");select SCOPE_IDENTITY()";


        return finalQuery;
    }

Here in finalQuery I want to make change.

1

Based on Using OUTPUT INTO with a simple INSERT statement you can follow this pattern:

INSERT INTO TableName(..,..)
OUTPUT INSERTED...
VALUES (.., .., ..)

So, in your case this should work(Assuming your identity column is ID):

string finalQuery = "Insert Into " + dataRow.Table.TableName + "(" + sqlBuilder1.ToString() + ")" + " OUTPUT INSERTED.ID "+ " values(" + sqlBuilder2.ToString() + ");";

See also IDENTITY, SCOPE_IDENTITY(), OUTPUT and other methods of retrieving last identity

| improve this answer | |

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.